Chang W K, Criddle C S
Department of Civil and Environmental Engineering, Center for Microbial Ecology, A126 Engineering Research Complex, Michigan State University, East Lansing, Michigan 48824-1326; telephone: (517) 355-8241; fax: 517-355-0250.
Biotechnol Bioeng. 1997 Dec 5;56(5):492-501. doi: 10.1002/(SICI)1097-0290(19971205)56:5<492::AID-BIT3>3.0.CO;2-D.
A model for cometabolism is verified experimentally for a defined methanotrophic mixed culture. The model includes the effects of cell growth, endogenous cell decay, product toxicity, and competitive inhibition with the assumption that cometabolic transformation rates are enhanced by reducing power obtained from oxidation of growth substrates. A theoretical transformation yield is used to quantify the enhancement resulting from growth substrate oxidation. A systematic method for evaluating model parameters independently is described. The applicability of the model is evaluated by comparing experimental data for methanotrophic cometabolism of TCE with model predictions from independently measured model parameters. Propagation of errors is used to quantify errors in parameter estimates and in the final prediction. The model successfully predicts TCE transformation and methane utilization for a wide range of concentrations of TCE (0.5 to 9 mg/L) and methane (0.05 to 6 mg/L). (c) 1997 John Wiley & Sons, Inc. Biotechnol Bioeng 56: 492-501, 1997.
针对特定的甲烷氧化混合培养物,通过实验验证了共代谢模型。该模型考虑了细胞生长、细胞内源衰减、产物毒性和竞争性抑制等因素,假设共代谢转化率通过生长底物氧化获得的还原力增强。使用理论转化产率来量化生长底物氧化带来的增强效果。描述了一种独立评估模型参数的系统方法。通过将三氯乙烯(TCE)甲烷氧化共代谢的实验数据与根据独立测量的模型参数进行的模型预测相比较,评估了该模型的适用性。误差传播用于量化参数估计和最终预测中的误差。该模型成功预测了在广泛的TCE浓度(0.5至9mg/L)和甲烷浓度(0.05至6mg/L)范围内的TCE转化和甲烷利用情况。(c) 1997 John Wiley & Sons, Inc. 《生物技术与生物工程》56: 492 - 501, 1997年